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The Java API for regular expressions states that \s will match whitespace. So the regex \\s\\s should match two spaces.

Pattern whitespace = Pattern.compile("\\s\\s");
matcher = whitespace.matcher(modLine);
while (matcher.find()) matcher.replaceAll(" ");

The aim of this is to replace all instances of two consecutive whitespace with a single space. However this does not actually work.

Am I having a grave misunderstanding of regexes or the term "whitespace"?

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1  
String has a replaceAll function that will save you a few lines of code. download.oracle.com/javase/1.5.0/docs/api/java/lang/String.html –  Zach L Jan 19 '11 at 2:05
1  
It isn’t your misunderstanding, but Java’s. Try splitting a string like "abc \xA0 def \x85 xyz" to see what I mean: there are only three fields there. –  tchrist Apr 11 '11 at 15:15
1  
Did you try "\\s+". With this you replace two or more spaces to one. –  hrzafer May 5 '13 at 12:33
    
I've been wondering for over an hour why my \\s split is not splitting over whitespace. Thanks a million! –  Marcin May 18 at 0:28

8 Answers 8

up vote 21 down vote accepted

Yeah, you need to grab the result of matcher.replaceAll():

String result = matcher.replaceAll(" ");
System.out.println(result);
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5  
Gah. I feel like the biggest idiot on earth. Neither I nor two other people seemed to notice that. I guess the stupidest little errors throw us off sometimes, eh? –  Glenn Nelson Jan 19 '11 at 2:09

You can’t use \s in Java to match white space on its own native character set, because Java doesn’t support the Unicode white space property — even though doing so is strictly required to meet UTS#18’s RL1.2! What it does have is not standards-conforming, alas.

Unicode defines 26 code points as \p{White_Space}: 20 of them are various sorts of \pZ GeneralCategory=Separator, and the remaining 6 are \p{Cc} GeneralCategory=Control.

White space is a pretty stable property, and those same ones have been around virtually forever. Even so, Java has no property that conforms to The Unicode Standard for these, so you instead have to use code like this:

String whitespace_chars =  ""       /* dummy empty string for homogeneity */
                        + "\\u0009" // CHARACTER TABULATION
                        + "\\u000A" // LINE FEED (LF)
                        + "\\u000B" // LINE TABULATION
                        + "\\u000C" // FORM FEED (FF)
                        + "\\u000D" // CARRIAGE RETURN (CR)
                        + "\\u0020" // SPACE
                        + "\\u0085" // NEXT LINE (NEL) 
                        + "\\u00A0" // NO-BREAK SPACE
                        + "\\u1680" // OGHAM SPACE MARK
                        + "\\u180E" // MONGOLIAN VOWEL SEPARATOR
                        + "\\u2000" // EN QUAD 
                        + "\\u2001" // EM QUAD 
                        + "\\u2002" // EN SPACE
                        + "\\u2003" // EM SPACE
                        + "\\u2004" // THREE-PER-EM SPACE
                        + "\\u2005" // FOUR-PER-EM SPACE
                        + "\\u2006" // SIX-PER-EM SPACE
                        + "\\u2007" // FIGURE SPACE
                        + "\\u2008" // PUNCTUATION SPACE
                        + "\\u2009" // THIN SPACE
                        + "\\u200A" // HAIR SPACE
                        + "\\u2028" // LINE SEPARATOR
                        + "\\u2029" // PARAGRAPH SEPARATOR
                        + "\\u202F" // NARROW NO-BREAK SPACE
                        + "\\u205F" // MEDIUM MATHEMATICAL SPACE
                        + "\\u3000" // IDEOGRAPHIC SPACE
                        ;        
/* A \s that actually works for Java’s native character set: Unicode */
String     whitespace_charclass = "["  + whitespace_chars + "]";    
/* A \S that actually works for  Java’s native character set: Unicode */
String not_whitespace_charclass = "[^" + whitespace_chars + "]";

Now you can use whitespace_charclass + "+" as the pattern in your replaceAll.


=begin soapbox

Sorry ’bout all that. Java’s regexes just don’t work very well on its own native character set, and so you really have to jump through exotic hoops to make them work.

And if you think white space is bad, you should see what you have to do to get \w and \b to finally behave properly!

Yes, it’s possible, and yes, it’s a mindnumbing mess. That’s being charitable, even. The easiest way to get a standards-comforming regex library for Java is to JNI over to ICU’s stuff. That’s what Google does for Android, because OraSun’s doesn’t measure up.

If you don’t want to do that but still want to stick with Java, I have a front-end regex rewriting library I wrote that “fixes” Java’s patterns, at least to get them conform to the requirements of RL1.2a in UTS#18, Unicode Regular Expressions.

=end soapbox

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@Glenn: CASE_INSENSITIVE does not affect whether the charclass abbreviations work on ASCII vs Unicode. –  tchrist Jan 19 '11 at 14:07
5  
Thanks for the head's up on Java's regex limitations. +1 –  ridgerunner Apr 12 '11 at 1:24
2  
I went to vote this answer up as helpful and found I already had. So thank you a second time :) –  Andrew Wyld Mar 12 '13 at 12:40
1  
this is really old. is it correct that this was fixed in java7 with the UNICODE_CHARACTER_CLASS flag? (or using (?U)) –  kritzikratzi 2 days ago
    
@kritzikratzi Yes. –  tchrist 2 days ago

Seems to work for me:

String s = "  a   b      c";
System.out.println("\""  + s.replaceAll("\\s\\s", " ") + "\"");

will print:

" a  b   c"

I think you intended to do this instead of your code:

Pattern whitespace = Pattern.compile("\\s\\s");
Matcher matcher = whitespace.matcher(s);
String result = "";
if (matcher.find()) {
    result = matcher.replaceAll(" ");
}

System.out.println(result);
share|improve this answer
Pattern whitespace = Pattern.compile("\\s\\s");
matcher = whitespace.matcher(modLine);

boolean flag = true;
while(flag)
{
 //Update your original search text with the result of the replace
 modLine = matcher.replaceAll(" ");
 //reset matcher to look at this "new" text
 matcher = whitespace.matcher(modLine);
 //search again ... and if no match , set flag to false to exit, else run again
 if(!matcher.find())
 {
 flag = false;
 }
}
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3  
Mike, while I appreciate you taking the time to answer, this question has been solved several months ago. There is no need to answer questions as old as this. –  Glenn Nelson Sep 15 '11 at 14:53

It shoud be

    String result = matcher.replaceAll("\\s{2}");
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What's your point? If you're saying replaceAll() creates a new string, the accepted answer already covered that. If you're saying he should use \s{2} instead of \s\s, they're exactly the same. Perhaps you meant to say \s{2,}; that would be valid, because it would eliminate the need for the enclosing while loop. –  Alan Moore Jun 16 at 19:11

Use of whitespace in RE is a pain, but I believe they work. The OP's problem can also be solved using StringTokenizer or the split() method. However, to use RE (uncomment the println() to view how the matcher is breaking up the String), here is a sample code:

import java.util.regex.*;

public class Two21WS {
    private String  str = "";
    private Pattern pattern = Pattern.compile ("\\s{2,}");  // multiple spaces

    public Two21WS (String s) {
            StringBuffer sb = new StringBuffer();
            Matcher matcher = pattern.matcher (s);
            int startNext = 0;
            while (matcher.find (startNext)) {
                    if (startNext == 0)
                            sb.append (s.substring (0, matcher.start()));
                    else
                            sb.append (s.substring (startNext, matcher.start()));
                    sb.append (" ");
                    startNext = matcher.end();
                    //System.out.println ("Start, end = " + matcher.start()+", "+matcher.end() +
                    //                      ", sb: \"" + sb.toString() + "\"");
            }
            sb.append (s.substring (startNext));
            str = sb.toString();
    }

    public String toString () {
            return str;
    }

    public static void main (String[] args) {
            String tester = " a    b      cdef     gh  ij   kl";
            System.out.println ("Initial: \"" + tester + "\"");
            System.out.println ("Two21WS: \"" + new Two21WS(tester) + "\"");
}}

It produces the following (compile with javac and run at the command prompt):

% java Two21WS Initial: " a b cdef gh ij kl" Two21WS: " a b cdef gh ij kl"

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3  
WTF!? Why would you want to do all that when you can just call replaceAll() instead? –  Alan Moore Jan 19 '11 at 11:47

For Java (not php, not javascript, not anyother):

txt.replaceAll("\\p{javaSpaceChar}{2,}"," ")
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This people voting down is not useful at all, and they use to mistake!!! –  surfealokesea Jun 11 '13 at 16:12
    
Strings are immutable, thus you have to assign the result to something, such as 'txt = txt.replaceAll()' I did not vote-down your answer, but that might be why someone else did so. –  Enwired Oct 4 '13 at 20:26
    
I know replaceAll returns a string the important thing 4 java programers is\\p{javaSpaceChar} –  surfealokesea Oct 6 '13 at 17:53
    
The original question made the mistake of not assigning the new string to a variable. Pointing out that mistake is thus the most important point of the answer. –  Enwired Oct 7 '13 at 16:17

JUST TRY:

String value = ....

if (value.matches("^\\s*$")) { ...

OR

if (!value.matches("^\\s*$")) { ...

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